Axial magnetic field injection on scaled-down maglif platforms

P. Gourdain, M. Adams
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Abstract

MagLIF is a promising inertial fusion based platform studied on the Z machine, at Sandia National Laboratories. This fusion scheme combines z-pinch liner implosion, laser heating and magnetic field confinement. A wealth of physical processes can be studied using this platform, from electron heat conduction to magnetic field compression, from magnetic Rayleigh-Taylor instabilities to particle confinement. Critical plasma parameters of the MagLIF concept are dimensionless. This suggests that most of the physics can be studied using university-scale pulsed-power drivers. However other parameters do not scale. One of them is the electrical resistivity, that is much larger on smaller devices. So, one can expect magnetic field compression on mega-ampere-class pulsed-power drivers to be much less effective. This work uses numerical simulations to demonstrate that if the return current posts surrounding the liner are tilted, a time-varying axial magnetic field is generated by the pulsed power driver. This field can diffuse inward, across the liner wall at the same speed that the initial axial field diffuses out. By picking the right angle for the posts, the inward and outward diffusions of both axial fields completely balance out, allowing to reach much more relevant dimensionless parameters. In fact, the rate of injection of the outer axial field can be much faster than the rate at which the inner axial field escapes, increasing the total field inside the liner even when no compression takes place. The injected axial field distribution is also much different from the initial compressed field.
按比例缩小磁悬浮平台轴向磁场注入
MagLIF是一个很有前途的基于惯性聚变的平台,在桑迪亚国家实验室的Z机上进行了研究。该核聚变方案结合了z-箍缩衬里内爆、激光加热和磁场约束。利用这个平台可以研究大量的物理过程,从电子热传导到磁场压缩,从磁瑞利-泰勒不稳定性到粒子约束。MagLIF概念的关键等离子体参数是无因次的。这表明,大多数物理学可以使用大学规模的脉冲功率驱动器进行研究。然而,其他参数不能缩放。其中之一是电阻率,它在较小的设备上要大得多。因此,可以预期,在兆安级脉冲功率驱动器上的磁场压缩效率要低得多。这项工作使用数值模拟来证明,如果围绕衬垫的回流电流柱倾斜,脉冲功率驱动器会产生随时间变化的轴向磁场。这个场可以向内扩散,以与初始轴向场扩散相同的速度穿过衬板壁。通过为柱子选择合适的角度,两个轴向场的向内和向外扩散完全平衡,允许达到更相关的无量纲参数。事实上,外轴向场的注入速度比内轴向场的逃逸速度要快得多,即使在没有压缩的情况下,也会增加尾管内部的总场。注入后的轴向场分布也与初始压缩场有很大不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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